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Numerical Study on Rotor Cooling of Turbine in Supercritical Carbon Dioxide Cycle

[Image: see text] The supercritical carbon dioxide cycle is a Brayton cycle with great application prospects. As a key equipment in this cycle, the turbine machinery usually adopts a dry gas seal as the sealing method between the cylinder and sliding bearing to reduce the leakage of carbon dioxide....

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Autores principales: Jiang, Peng, Tian, Yong, Wang, Bo, Guo, Chaohong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9631756/
https://www.ncbi.nlm.nih.gov/pubmed/36340142
http://dx.doi.org/10.1021/acsomega.2c05531
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author Jiang, Peng
Tian, Yong
Wang, Bo
Guo, Chaohong
author_facet Jiang, Peng
Tian, Yong
Wang, Bo
Guo, Chaohong
author_sort Jiang, Peng
collection PubMed
description [Image: see text] The supercritical carbon dioxide cycle is a Brayton cycle with great application prospects. As a key equipment in this cycle, the turbine machinery usually adopts a dry gas seal as the sealing method between the cylinder and sliding bearing to reduce the leakage of carbon dioxide. In this paper, the numerical model of supercritical carbon dioxide turbine rotor cooling is established, and the grid independence is verified. The effects of inlet temperature and flow rate of dry gas seal and leakage flow rate from cylinder to dry gas seal at the high-temperature inlet side of a turbine upon rotor cooling are studied. The effects of inlet temperature T(in) and flow rate Q(v) of sealing gas in a dry gas seal and leakage mass flow rate Q(m) from a cylinder to dry gas seal on pressure loss, outlet flow distribution, exhaust temperature, and rotor temperature distribution are analyzed. As a result, it can be found that with the increase of the inlet flow rate of dry gas seal gas and the leakage flow rate from cylinder to dry gas seal, the pressure difference between the inlet and outlet of each seal gas increases. When the inlet flow rate of dry gas seal gas ranges from 300 N m(3)/h to 900 N m(3)/h, with the leakage flow from cylinder to dry gas seal increasing from 1.3 kg/s to 2.08 kg/s, the pressure difference between inlet and outlet of each seal gas increases by 7.9% to 13.4%. The pressure difference between the inlet and outlet of each seal gas decreases with the increase of the inlet temperature of dry gas seal gas. When the inlet flow rate of the seal gas of the dry gas seal is 300 N m(3)/h and the leakage flow rate from cylinder to dry gas seal is 2.08 kg/s, the inlet temperature of seal gas increases from 100 to 150 °C, and the flow distribution at the outlet is basically unchanged. The research provides theoretical reference for rotor cooling design of a supercritical carbon dioxide turbine.
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spelling pubmed-96317562022-11-04 Numerical Study on Rotor Cooling of Turbine in Supercritical Carbon Dioxide Cycle Jiang, Peng Tian, Yong Wang, Bo Guo, Chaohong ACS Omega [Image: see text] The supercritical carbon dioxide cycle is a Brayton cycle with great application prospects. As a key equipment in this cycle, the turbine machinery usually adopts a dry gas seal as the sealing method between the cylinder and sliding bearing to reduce the leakage of carbon dioxide. In this paper, the numerical model of supercritical carbon dioxide turbine rotor cooling is established, and the grid independence is verified. The effects of inlet temperature and flow rate of dry gas seal and leakage flow rate from cylinder to dry gas seal at the high-temperature inlet side of a turbine upon rotor cooling are studied. The effects of inlet temperature T(in) and flow rate Q(v) of sealing gas in a dry gas seal and leakage mass flow rate Q(m) from a cylinder to dry gas seal on pressure loss, outlet flow distribution, exhaust temperature, and rotor temperature distribution are analyzed. As a result, it can be found that with the increase of the inlet flow rate of dry gas seal gas and the leakage flow rate from cylinder to dry gas seal, the pressure difference between the inlet and outlet of each seal gas increases. When the inlet flow rate of dry gas seal gas ranges from 300 N m(3)/h to 900 N m(3)/h, with the leakage flow from cylinder to dry gas seal increasing from 1.3 kg/s to 2.08 kg/s, the pressure difference between inlet and outlet of each seal gas increases by 7.9% to 13.4%. The pressure difference between the inlet and outlet of each seal gas decreases with the increase of the inlet temperature of dry gas seal gas. When the inlet flow rate of the seal gas of the dry gas seal is 300 N m(3)/h and the leakage flow rate from cylinder to dry gas seal is 2.08 kg/s, the inlet temperature of seal gas increases from 100 to 150 °C, and the flow distribution at the outlet is basically unchanged. The research provides theoretical reference for rotor cooling design of a supercritical carbon dioxide turbine. American Chemical Society 2022-10-20 /pmc/articles/PMC9631756/ /pubmed/36340142 http://dx.doi.org/10.1021/acsomega.2c05531 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Jiang, Peng
Tian, Yong
Wang, Bo
Guo, Chaohong
Numerical Study on Rotor Cooling of Turbine in Supercritical Carbon Dioxide Cycle
title Numerical Study on Rotor Cooling of Turbine in Supercritical Carbon Dioxide Cycle
title_full Numerical Study on Rotor Cooling of Turbine in Supercritical Carbon Dioxide Cycle
title_fullStr Numerical Study on Rotor Cooling of Turbine in Supercritical Carbon Dioxide Cycle
title_full_unstemmed Numerical Study on Rotor Cooling of Turbine in Supercritical Carbon Dioxide Cycle
title_short Numerical Study on Rotor Cooling of Turbine in Supercritical Carbon Dioxide Cycle
title_sort numerical study on rotor cooling of turbine in supercritical carbon dioxide cycle
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9631756/
https://www.ncbi.nlm.nih.gov/pubmed/36340142
http://dx.doi.org/10.1021/acsomega.2c05531
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